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Peridynamic simulations of the tetragonal to monoclinic phase transformation in zirconium dioxide

机译:二氧化锆中四方相到单斜相变的peridynamic模拟

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摘要

Whether present as a manufactured stabilised ceramic, or as an oxide layer on zirconium alloys, mechanical degradation in zirconia is influenced by the tetragonal to monoclinic phase transformation. Peridynamic theory was implemented within the Abaqus finite element framework to understand how the tetragonal to monoclinic phase transformation can itself cause fracture in zirconia. In 2D these simulations represent a single grain, transforming via an isometric dilational expansion, surrounded by a homogenous monoclinic oxide. The effect of transformation time, applied bi-axial pressure, and the fracture strain were assessed using the change in strain energy and the amount of damage in the oxide surrounding the transformed grain. Reducing the applied compressive stress or applying a tensile stress reduces the transformation strain energy. The introduction of a fracture strain leads to damage in the surrounding oxide region largely in the form of cracks, and reduces the transformation strain energy further by reducing the constraint on the transforming grain. The extent of the fracture, and reduction in constraint on the transformed grain, is more significant with the application of a biaxial tensile pressure.
机译:无论是以制成的稳定陶瓷形式存在,还是以锆合金上的氧化物层形式存在,氧化锆中的机械降解都会受到四方晶系到单斜晶系相变的影响。在Abaqus有限元框架内实施了围动力学理论,以了解四方向单斜相转变本身如何导致氧化锆破裂。在2D中,这些模拟代表单个晶粒,该晶粒通过等轴膨胀膨胀进行转换,并被均匀的单斜晶氧化物包围。利用应变能的变化和相变晶粒周围氧化物的破坏量来评估相变时间,施加的双轴压力和断裂应变的影响。减小施加的压缩应力或施加拉应力会减小相变应变能。断裂应变的引入在很大程度上以裂纹形式导致对周围氧化物区域的破坏,并且通过减小对相变晶粒的约束而进一步降低了相变应变能。随着双轴拉伸压力的施加,断裂的程度和对相变晶粒的约束的减小更加显着。

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